Beam–Column Connections with Concealed Steel Components in Timber Structures
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Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
In timber structures, concealed beam-to-column connections may be attractive in ap
plications where high load-carrying capacity must be combined with a seamless archi
tectural expression. However, such connections are challenging to design, since the
connection must provide sufficient resistance in both the steel components and the sur
rounding timber. In particular, compression perpendicular to the grain in the beam-side
contact zone may become governing in bearing-type solutions.
This thesis investigates concealed beam-to-column connections in timber structures for
high-load applications. Different concealed connection families were first reviewed and
qualitatively screened with respect to load transfer, structural behaviour, and degree of
concealment. Based on this screening, a bearing-type concept was selected for further
study and developed in the form of an internal beam shoe integrated within the beam
cross-section.
The connection behaviour was then studied through a combination of analytical and
numerical methods. Simplified analytical models were used to describe the principal
load-transfer mechanisms and to provide reference quantities for validation of a nu
merical model developed in Abaqus. The numerical analysis was used to investigate
the force transfer to the timber column and to identify the governing steel components
and fasteners. The results showed that the fasteners satisfied the governing shear, axial,
and combined interaction checks for the studied load case, while the bearing plate was
identified as the critical steel component due to local bending stresses.
On the beam side, the unreinforced timber did not provide sufficient resistance against
compression perpendicular to the grain. Reinforcement strategies were therefore stud
ied analytically through parametric analyses and genetic-algorithm-based optimization.
The results showed that fully threaded screws, rods with wood screw thread, and bonded
in rods could increase the beam-side capacity sufficiently to carry the applied load,
whereas wooden dowels could not. Among the feasible alternatives, screw reinforce
ment was found to be the most efficient solution with respect to capacity increase and
associated CO2-emissions.
Beskrivning
Ämne/nyckelord
concealed timber connections, beam-to-column connection, compression perpendicular to grain, internal beam shoe, reinforcement optimization, timber structures
